Fibre-reinforced cemented paste backfill (F-CPB; a mixture of tailings, fibre, cement, and water) is exposed to non-isothermal curing environments in the field. However, no investigations have been conducted on the impact of non-isothermal curing environments on F-CPB compressive strength, shear characteristics and stress–strain behaviour, although these are important design parameters for F-CPB structures. Therefore, a series of mechanical and microstructural tests were performed on samples with and without fibres exposed to isothermal and non-isothermal conditions. It was found that the non-isothermal curing condition substantially enhances the F-CPB compressive strength and strength gain ratio. The shear strength, cohesion and internal friction angle of the F-CPB samples cured under non-isothermal conditions were higher than those cured under isothermal conditions. These impacts of non-isothermal curing on the compressive and shear characteristics of F-CPBs are related to the temperature-induced change in the microstructure of these samples. The F-CPBs cured under non-isothermal conditions had more hydration products than those cured under isothermal conditions. Moreover, mercury instrusion porosimetry (MIP) tests showed that the F-CPBs subjected to non-isothermal conditions had a finer pore structure than those exposed to isothermal conditions, which contributed to an enhancement of the mechanical characteristics of the F-CPBs subjected to non-isothermal curing.
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June 2024
Research Article|
February 27 2023
Compressive and shear response of fibre-reinforced backfill: impact of field temperature Available to Purchase
X. Tian;
X. Tian
1Doctor of Engineering, School of Civil Engineering, Shaoxing University, Shaoxing, China
2Department of Civil Engineering, University of Ottawa, Ottawa, Ontario, Canada
3China State Key Laboratory of Geomechanics and Deep Underground Engineering, China University of Mining and Technology, Beijing, China
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M. Fall
M. Fall
4Professor, University Research Chair in Geotechnical Engineering for Net Zero Transitions, Chair of the Department of Civil Engineering, Department of Civil Engineering, University of Ottawa, Ottawa, Ontario, Canada, E-mail: mfall@uottawa.ca (corresponding author)
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Publisher: Emerald Publishing
Received:
July 05 2022
Accepted:
December 27 2022
Online ISSN: 1751-7613
Print ISSN: 1072-6349
© 2024 Emerald Publishing Limited
2024
Geosynthetics International (2024) 31 (3): 255–268.
Article history
Received:
July 05 2022
Accepted:
December 27 2022
Citation
Tian X, Fall M (2024), "Compressive and shear response of fibre-reinforced backfill: impact of field temperature". Geosynthetics International, Vol. 31 No. 3 pp. 255–268, doi: https://doi.org/10.1680/jgein.22.00310
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